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LTM4650 Datasheet(PDF) 21 Page - Analog Devices

No. de pieza LTM4650
Descripción Electrónicos  Source/Sink Dual ±25A or Single ±50A μModule Regulator with Input Overvoltage Protection
PDF  38 Pages
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LTM4652
21
Rev. 0
For more information www.analog.com
APPLICATIONS INFORMATION
Figure 10. Output Coincident Tracking Waveform
TIME
MASTER OUTPUT
SLAVE OUTPUT
4652 F10
For example, RTR(TOP) = 60.4k and RTR(BOT) = 13.3k is a
good combination for coincident tracking for a VOUT(MA)
= 1.5V and VOUT(SL) = 3.3V application.
Power Good
The PGOOD pins are open drain pins that can be used to
monitor valid output voltage regulation. This pin monitors
a 10% window around the regulation point. A resistor can
be pulled up to a particular supply voltage no greater than
6V maximum for monitoring.
Stability Compensation
The LTM4652 has a built-in 10pF high frequency filter
capacitor from COMP to SGND on each output chan-
nel. An external R-C filtering circuit is required to add
from COMP to SGND to achieve fast Type II control loop
compensation. Table  6 is provided for most applica-
tion requirements. The Analog Devices µModule Power
Design Tool (LTpowerCAD) provides for other control loop
optimization.
Run Enable
The RUN pins have an enable threshold of 1.4V maximum,
typically 1.22V with 135mV of hysteresis. They control the
turn on of each of the channels and INTVCC. These pins
can be pulled up to VIN for 5V operation, or a 5V Zener
diode can be placed on the pins and a 10k to 100k resis-
tor can be placed up to higher than 5V input for enabling
the channels. There is 1µA pull-up current for each RUN
pin. The LTM4652 will turn on with RUN floating. Please
note RUN has a 6V Abs Max voltage rating. The RUN
pins can also be used for output voltage sequencing.
In parallel operation the RUN pins can be tied together
and controlled from a single control. See the Typical
Applications circuits in Figure 31.
INTVCC and EXTVCC
The LTM4652 module has an internal 5V low dropout
regulator that is derived from the input voltage. This reg-
ulator is used to power the control circuitry and the power
MOSFET drivers. This regulator can source up to 50mA,
and typically uses ~30mA for powering the device at the
maximum frequency. This internal 5V supply is enabled
by either RUN1 or RUN2.
EXTVCC allows an external 5V supply to power the
LTM4652 and reduce power dissipation from the internal
low dropout 5V regulator. The power loss savings can be
calculated using Equation 10.
(VIN – 5V) • 30mA = PLOSS
(10)
EXTVCC has a threshold of 4.7V for activation, and a max-
imum rating of 6V. When using a 5V input, connect this
5V input to EXTVCC also to maintain a 5V gate drive level.
EXTVCC must sequence on after VIN, and EXTVCC must
sequence off before VIN.
Differential Remote Sense Amplifier
An accurate differential remote sense amplifier is provided
to sense low output voltages accurately at the remote
load points. This is especially true for high current loads.
The amplifier can be used on one of the two channels, or
on a single parallel output. It is very important that the
DIFFP and DIFFN are connected properly at the output,
and DIFFOUT is connected to either VOUTS1 or VOUTS2.
In parallel operation, the DIFFP and DIFFN are connected
properly at the output, and DIFFOUT is connected to
one of the VOUTS pins. Review the parallel schematics in
Figure 32 and Figure 34 and review Figure 4. Please note
the differential amplifier can be used for ≤3.3V outputs.



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